523

I want to create a function that performs a function passed by parameter on a set of data. How do you pass a function as a parameter in C?

  • 9
    If you're using functions/arrays as variables, ALWAYS use typedef. – Mooing Duck Jan 13 '14 at 21:09
  • 2
    We call it Function pointer – AminM Apr 1 '14 at 11:11
  • The function name should be a ponter to the function. Most people learning C cover qsort sooner or later which does exactly this ? – mckenzm Jul 3 '15 at 2:09
  • 2
    @MooingDuck I don't agree with your suggestion, and your suggestion lacks reasoning to support the conclusion. I personally prefer never using typedef on function pointers, and I think it makes the code clearer and easier to read. – andrewrk Dec 16 '15 at 22:26
  • @andrewrk: You prefer void funcA(void(*funcB)(int)) and void (*funcA())() to typedef void funcB(); void funcA(funcB) and funcB funcA()? I dont see the upside. – Mooing Duck Dec 16 '15 at 23:27
659

Declaration

A prototype for a function which takes a function parameter looks like the following:

void func ( void (*f)(int) );

This states that the parameter f will be a pointer to a function which has a void return type and which takes a single int parameter. The following function (print) is an example of a function which could be passed to func as a parameter because it is the proper type:

void print ( int x ) {
  printf("%d\n", x);
}

Function Call

When calling a function with a function parameter, the value passed must be a pointer to a function. Use the function's name (without parentheses) for this:

func(print);

would call func, passing the print function to it.

Function Body

As with any parameter, func can now use the parameter's name in the function body to access the value of the parameter. Let's say that func will apply the function it is passed to the numbers 0-4. Consider, first, what the loop would look like to call print directly:

for ( int ctr = 0 ; ctr < 5 ; ctr++ ) {
  print(ctr);
}

Since func's parameter declaration says that f is the name for a pointer to the desired function, we recall first that if f is a pointer then *f is the thing that f points to (i.e. the function print in this case). As a result, just replace every occurrence of print in the loop above with *f:

void func ( void (*f)(int) ) {
  for ( int ctr = 0 ; ctr < 5 ; ctr++ ) {
    (*f)(ctr);
  }
}

From http://math.hws.edu/bridgeman/courses/331/f05/handouts/c-c++-notes.html

  • 32
    In your first and last code examples, the * is not compulsory. Both the function parameter definition and the f function call can take f just as is without *. It might be a good idea to do it as you do though, to make it obvious that parameter f is a function pointer. But it hurts readability quite often. – Gauthier Feb 22 '12 at 12:52
  • 5
    See [c99, 6.9.1§14] for examples. Both are correct of course, I just wanted to mention the alternative. – Gauthier Feb 22 '12 at 12:58
  • 3
    Really? The top-rated answer doesn't make a single reference to using a typedef for function pointers? Sorry, have to down-vote. – Jonathon Reinhart Oct 1 '14 at 8:03
  • 2
    @JonathonReinhart , what would be advantages with 'typedef' apprach? This version looks much cleaner though and lacks extra statements too. pretty much starter here. – Abhinav Gauniyal Feb 22 '15 at 7:04
  • 3
    @JonathonReinhart well spotted; it should be explicitly noted that pointer typedefs obfuscate the code and therefore should not be used. – M.M Nov 24 '15 at 2:39
116

This question already has the answer for defining function pointers, however they can get very messy, especially if you are going to be passing them around your application. To avoid this unpleasantness I would recommend that you typedef the function pointer into something more readable. For example.

typedef void (*functiontype)();

Declares a function that returns void and takes no arguments. To create a function pointer to this type you can now do:

void dosomething() { }

functiontype func = &dosomething;
func();

For a function that returns an int and takes a char you would do

typedef int (*functiontype2)(char);

and to use it

int dosomethingwithchar(char a) { return 1; }

functiontype2 func2 = &dosomethingwithchar
int result = func2('a');

There are libraries that can help with turning function pointers into nice readable types. The boost function library is great and is well worth the effort!

boost::function<int (char a)> functiontype2;

is so much nicer than the above.

  • 1
    If you want to "turn a function pointer into a type", you don't need the boost library. Just use typedef; it's simpler and doesn't require any extra libraries. – wizzwizz4 Apr 9 '16 at 11:50
54

Since C++11 you can use the functional library to do this in a succinct and generic fashion. The syntax is, e.g.,

std::function<bool (int)>

where bool is the return type here of a one-argument function whose first argument is of type int.

I have included an example program below:

// g++ test.cpp --std=c++11
#include <functional>

double Combiner(double a, double b, std::function<double (double,double)> func){
  return func(a,b);
}

double Add(double a, double b){
  return a+b;
}

double Mult(double a, double b){
  return a*b;
}

int main(){
  Combiner(12,13,Add);
  Combiner(12,13,Mult);
}

Sometimes, though, it is more convenient to use a template function:

// g++ test.cpp --std=c++11

template<class T>
double Combiner(double a, double b, T func){
  return func(a,b);
}

double Add(double a, double b){
  return a+b;
}

double Mult(double a, double b){
  return a*b;
}

int main(){
  Combiner(12,13,Add);
  Combiner(12,13,Mult);
}
  • 25
    The question is about C; C++ does not apply here. – Super Cat Oct 29 '15 at 23:44
  • 12
    The question for C++ (stackoverflow.com/questions/6339970/…) is referred to here, so I think this answer is in place. – mr_T Mar 24 '16 at 11:00
  • 3
    Maybe the question for C++ shouldn't be referred to here because this question for is C. – Michael Fulton Apr 19 '18 at 16:22
13

Pass address of a function as parameter to another function as shown below

#include <stdio.h>

void print();
void execute(void());

int main()
{
    execute(print); // sends address of print
    return 0;
}

void print()
{
    printf("Hello!");
}

void execute(void f()) // receive address of print
{
    f();
}

Also we can pass function as parameter using function pointer

#include <stdio.h>

void print();
void execute(void (*f)());

int main()
{
    execute(&print); // sends address of print
    return 0;
}

void print()
{
    printf("Hello!");
}

void execute(void (*f)()) // receive address of print
{
    f();
}
3

You need to pass a function pointer. The syntax is a little cumbersome, but it's really powerful once you get familiar with it.

1

Functions can be "passed" as function pointers, as per 6.7.6.3p8: "A declaration of a parameter as ‘‘function returning type’’ shall be adjusted to ‘‘pointer to function returning type’’, as in 6.3.2.1. ". For example, this:

void foo(int bar(int, int));

is equivalent to this:

void foo(int (*bar)(int, int));
0

It's not really a function, but it is an localised piece of code. Of course it doesn't pass the code just the result. It won't work if passed to an event dispatcher to be run at a later time (as the result is calculated now and not when the event occurs). But it does localise your code into one place if that is all you are trying to do.

#include <stdio.h>

int IncMultInt(int a, int b)
{
    a++;
    return a * b;
}

int main(int argc, char *argv[])

{
    int a = 5;
    int b = 7;

    printf("%d * %d = %d\n", a, b, IncMultInt(a, b));

    b = 9;

    // Create some local code with it's own local variable
    printf("%d * %d = %d\n", a, b,  ( { int _a = a+1; _a * b; } ) );

    return 0;
}

protected by Antti Haapala Apr 26 '16 at 17:31

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